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Ng, Mei Rosa

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Mei Rosa

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Ng, Mei Rosa

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Now showing 1 - 3 of 3
  • Publication

    Substrate stiffness regulates cadherin-dependent collective migration through myosin-II contractility

    (The Rockefeller University Press, 2012) Ng, Mei Rosa; Besser, Achim; Danuser, Gaudenz; Brugge, Joan

    The mechanical microenvironment is known to influence single-cell migration; however, the extent to which mechanical cues affect collective migration of adherent cells is not well understood. We measured the effects of varying substrate compliance on individual cell migratory properties in an epithelial wound-healing assay. Increasing substrate stiffness increased collective cell migration speed, persistence, and directionality as well as the coordination of cell movements. Dynamic analysis revealed that wounding initiated a wave of motion coordination from the wound edge into the sheet. This was accompanied by a front-to-back gradient of myosin-II activation and establishment of cell polarity. The propagation was faster and farther reaching on stiff substrates, indicating that substrate stiffness affects the transmission of directional cues. Manipulation of myosin-II activity and cadherin–catenin complexes revealed that this transmission is mediated by coupling of contractile forces between neighboring cells. Thus, our findings suggest that the mechanical environment integrates in a feedback with cell contractility and cell–cell adhesion to regulate collective migration.

  • Publication

    Altered metabolic requirements in cancer cell migration and metastasis

    (BioMed Central, 2012) Lee, Jaewon; Ng, Mei Rosa; Sinkevicius, Kerstin Wolf; Kim, Carla; Danuser, Gaudenz; Brugge, Joan; Haigis, Marcia
  • Publication

    Mapping the dynamics of force transduction at cell–cell junctions of epithelial clusters

    (eLife Sciences Publications, Ltd, 2014) Ng, Mei Rosa; Besser, Achim; Brugge, Joan; Danuser, Gaudenz

    Force transduction at cell-cell adhesions regulates tissue development, maintenance and adaptation. We developed computational and experimental approaches to quantify, with both sub-cellular and multi-cellular resolution, the dynamics of force transmission in cell clusters. Applying this technology to spontaneously-forming adherent epithelial cell clusters, we found that basal force fluctuations were coupled to E-cadherin localization at the level of individual cell-cell junctions. At the multi-cellular scale, cell-cell force exchange depended on the cell position within a cluster, and was adaptive to reconfigurations due to cell divisions or positional rearrangements. Importantly, force transmission through a cell required coordinated modulation of cell-matrix adhesion and actomyosin contractility in the cell and its neighbors. These data provide insights into mechanisms that could control mechanical stress homeostasis in dynamic epithelial tissues, and highlight our methods as a resource for the study of mechanotransduction in cell-cell adhesions. DOI: http://dx.doi.org/10.7554/eLife.03282.001